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Beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies

The objective of this study was to compare the influence of beef production systems using additive combinations of growth-promotant technologies on meat quality. Steer calves (n = 120) were assigned to 1 of 4 treatments: 1) no technology (NT; control), 2) antibiotic treated (ANT; NT plus therapeutic...

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Autores principales: Webb, Megan J, Block, Janna J, Jaeger, John R, Funston, Rick N, Gonda, Michael G, Underwood, Keith R, Grubbs, Judson K, Olson, Kenneth C, Blair, Amanda D
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10424714/
https://www.ncbi.nlm.nih.gov/pubmed/37583488
http://dx.doi.org/10.1093/tas/txad092
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author Webb, Megan J
Block, Janna J
Jaeger, John R
Funston, Rick N
Gonda, Michael G
Underwood, Keith R
Grubbs, Judson K
Olson, Kenneth C
Blair, Amanda D
author_facet Webb, Megan J
Block, Janna J
Jaeger, John R
Funston, Rick N
Gonda, Michael G
Underwood, Keith R
Grubbs, Judson K
Olson, Kenneth C
Blair, Amanda D
author_sort Webb, Megan J
collection PubMed
description The objective of this study was to compare the influence of beef production systems using additive combinations of growth-promotant technologies on meat quality. Steer calves (n = 120) were assigned to 1 of 4 treatments: 1) no technology (NT; control), 2) antibiotic treated (ANT; NT plus therapeutic antibiotics, monensin, and tylosin), 3) implant treated (IMP; ANT plus a series of three implants), and 4) beta-agonist treated (BA; IMP plus ractopamine-HCl). Muscle biopsy samples from the longissimus lumborum were extracted from a subset (n = 4 per treatment) of steers to evaluate expression of calpain-1, calpain-2, and calpastatin using real-time RT-PCR. Following carcass chilling, objective color (L*, a*, and b*) was evaluated. The right strip loin was removed from each carcass, portioned into 2.54-cm steaks, and designated to 7, 14, or 21 d postmortem aging periods for analysis of cook loss and Warner–Bratzler shear force (WBSF). The anterior face of each strip loin was used for analysis of crude fat and moisture. Treatment influenced (P < 0.001) L*, a*, and b*. The NT and IMP treatments had greater (P < 0.01) L* values, ANT was intermediate, and BA had the lowest (P < 0.01) L* values. The NT and IMP treatments had higher (P < 0.01) a* and b* values compared with ANT, which were higher (P < 0.01) than BA. Steaks from implanted steers (IMP and BA) tended (P ≤ 0.067) to exhibit higher a* and b* than steaks from nonimplanted steers. Cattle in the NT and ANT treatments produced steaks with increased (P < 0.01) crude fat percentage compared with the IMP and BA treatments, which were similar (P > 0.05). Percent moisture of NT steaks was lower (P < 0.01) than all other treatments, ANT was intermediate, and IMP and BA were similar (P > 0.05) and had the highest (P < 0.01) moisture content. Cook loss tended to be greater (P = 0.088) for implanted steers (IMP and BA) compared to nonimplanted steers (NT and ANT). Steaks from NT and ANT treatments were more tender (P < 0.05) than IMP and BA, which were similar (P > 0.05). Thus, WBSF was lower (P < 0.001) in nonimplanted than implanted steaks. Expression of calpastatin was increased (P ≤ 0.025) in ANT and BA treatments, and there was a tendency for expression of calpain-2 to be increased (P = 0.081) in ANT compared to NT. These results suggest that production systems with limited use of growth promoting technology produced strip loins with more crude fat, less moisture and cook loss, and improved tenderness.
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spelling pubmed-104247142023-08-15 Beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies Webb, Megan J Block, Janna J Jaeger, John R Funston, Rick N Gonda, Michael G Underwood, Keith R Grubbs, Judson K Olson, Kenneth C Blair, Amanda D Transl Anim Sci Meat Science The objective of this study was to compare the influence of beef production systems using additive combinations of growth-promotant technologies on meat quality. Steer calves (n = 120) were assigned to 1 of 4 treatments: 1) no technology (NT; control), 2) antibiotic treated (ANT; NT plus therapeutic antibiotics, monensin, and tylosin), 3) implant treated (IMP; ANT plus a series of three implants), and 4) beta-agonist treated (BA; IMP plus ractopamine-HCl). Muscle biopsy samples from the longissimus lumborum were extracted from a subset (n = 4 per treatment) of steers to evaluate expression of calpain-1, calpain-2, and calpastatin using real-time RT-PCR. Following carcass chilling, objective color (L*, a*, and b*) was evaluated. The right strip loin was removed from each carcass, portioned into 2.54-cm steaks, and designated to 7, 14, or 21 d postmortem aging periods for analysis of cook loss and Warner–Bratzler shear force (WBSF). The anterior face of each strip loin was used for analysis of crude fat and moisture. Treatment influenced (P < 0.001) L*, a*, and b*. The NT and IMP treatments had greater (P < 0.01) L* values, ANT was intermediate, and BA had the lowest (P < 0.01) L* values. The NT and IMP treatments had higher (P < 0.01) a* and b* values compared with ANT, which were higher (P < 0.01) than BA. Steaks from implanted steers (IMP and BA) tended (P ≤ 0.067) to exhibit higher a* and b* than steaks from nonimplanted steers. Cattle in the NT and ANT treatments produced steaks with increased (P < 0.01) crude fat percentage compared with the IMP and BA treatments, which were similar (P > 0.05). Percent moisture of NT steaks was lower (P < 0.01) than all other treatments, ANT was intermediate, and IMP and BA were similar (P > 0.05) and had the highest (P < 0.01) moisture content. Cook loss tended to be greater (P = 0.088) for implanted steers (IMP and BA) compared to nonimplanted steers (NT and ANT). Steaks from NT and ANT treatments were more tender (P < 0.05) than IMP and BA, which were similar (P > 0.05). Thus, WBSF was lower (P < 0.001) in nonimplanted than implanted steaks. Expression of calpastatin was increased (P ≤ 0.025) in ANT and BA treatments, and there was a tendency for expression of calpain-2 to be increased (P = 0.081) in ANT compared to NT. These results suggest that production systems with limited use of growth promoting technology produced strip loins with more crude fat, less moisture and cook loss, and improved tenderness. Oxford University Press 2023-08-01 /pmc/articles/PMC10424714/ /pubmed/37583488 http://dx.doi.org/10.1093/tas/txad092 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of the American Society of Animal Science. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Meat Science
Webb, Megan J
Block, Janna J
Jaeger, John R
Funston, Rick N
Gonda, Michael G
Underwood, Keith R
Grubbs, Judson K
Olson, Kenneth C
Blair, Amanda D
Beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies
title Beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies
title_full Beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies
title_fullStr Beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies
title_full_unstemmed Beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies
title_short Beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies
title_sort beef color and tenderness response to production systems utilizing additive combinations of growth-promotant technologies
topic Meat Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10424714/
https://www.ncbi.nlm.nih.gov/pubmed/37583488
http://dx.doi.org/10.1093/tas/txad092
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